Artículos de revistas
Phylogenetic Relationships Of The New World Troidini Swallowtails (lepidoptera: Papilionidae) Based On Coi, Coii, And Ef-1α Genes
Registro en:
Molecular Phylogenetics And Evolution. , v. 36, n. 3, p. 468 - 483, 2005.
10557903
10.1016/j.ympev.2005.04.007
2-s2.0-23444449631
Autor
Silva-Brandao K.L.
Lucci Freitas A.V.
Brower A.V.Z.
Solferini V.N.
Institución
Resumen
A phylogeny of the Neotropical members of the Tribe Troidini (Lepidoptera: Papilionidae) was obtained with sequences of three protein-coding genes: two mitochondrial (COI and COII), and one nuclear (EF-1α). Parsimony and Bayesian analyses of 33 taxa resulted in very similar trees regardless of method used with the 27 troidines always forming a monophyletic clade. Within Troidini, the genus Battus is sister group to the remaining troidines, followed by a clade formed by the Paleotropical taxa (here represented by three exemplars). The genus Euryades is the next branch, and sister group of Parides. The genus Parides is monophyletic, and is divided into four main groups by Maximum Parsimony analysis, with the most basal group composed of tailed species restricted to SE Brazil. Character optimization of ecological and morphological traits over the phylogeny proposed for troidines indicated that the use of several species of Aristolochia is ancestral over the use of few or a single host-plant. For the other three characters, the ancestral states were the absence of long tails, forest as the primary habitat and oviposition solitary or in loose group of several eggs. © 2005 Elsevier Inc. All rights reserved. 36 3 468 483 Armbruster, W.S., Baldwin, B.G., Switch from specialized to generalized pollination (1998) Nature, 394, p. 623 Aubert, J., Legal, L., Descimon, H., Michel, F., Molecular phylogeny of swallowtail butterflies of the tribe Papilionini (Papilionidae, Lepidoptera) (1999) Mol. Phylogenet. Evol., 12, pp. 156-167 Baker, R.H., Desalle, R., Multiple sources of character information and the phylogeny of Hawaiian Drosophilids (1997) Syst. Biol., 46, pp. 654-673 Baker, R.H., Yu, X.B., Desalle, R., Assessing the relative contribution of molecular and morphological characters in simultaneous analysis trees (1998) Mol. Phylogenet. Evol., 9, pp. 427-436 Bernays, E.A., Selective attention and host-plant specialization (1996) Entomol. Exp. Appl., 80, pp. 125-131 Bernays, E.A., Evolution of feeding behavior in insect herbivores-success seen as different ways to eat without being eaten (1998) Bioscience, 48, pp. 35-44 Boggs Watt, W.B.C.L., Ehrlich, P.R., (2003) Butterflies: Ecology and Evolution Taking Flight, , University of Chicago Press Chicago Bremer, K., The limits of amino-acid sequence data in angiosperm phylogenetic reconstruction (1988) Evolution, 42, pp. 795-803 Bremer, K., Branch support and tree stability (1994) Cladistics, 10, pp. 295-304 Brower, A.V.Z., Phylogeny of Heliconius butterflies inferred from mitochondrial DNA sequences (Lepidoptera: Nymphalidae) (1994) Mol. Phylogenet. Evol., 3, pp. 159-174 Brower, A.V.Z., Desalle, R., Vogler, A.P., Gene trees, species trees and systematics: A cladistic perspective (1996) Annu. Rev. Ecol. Syst., 27, pp. 423-450 Brower, L.P., Brower, J.V.Z., Birds, butterflies, and plant poisons: A study in ecological chemistry (1964) Zoologica, 49, pp. 137-159 Brown, K.S., Damman, A.J., Feeny, P., Troidine swallowtails (Lepidoptera: Papilionidae) in southeastern Brazil: Natural history and foodplant relationships (1981) J. Res. Lepid., 19, pp. 199-226 Brown, K.S., Klitzke, C.F., Berlingeri, C., Santos, P.E.R., Neotropical swallowtails: Chemistry of food plant relationships, population ecology, and biosystematics (1995) Swallowtail Butterflies: Their Ecology and Evolutionary Biology, pp. 405-444. , J.M. Scriber Y. Tsubaki R.C. Lederhouse Scientific Publishers Gainesville, FL Bull, J.J., Huelsenbeck, J.P., Cunningham, C.W., Swofford, D.L., Waddell, P.J., Partitioning and combining data in phylogenetic analysis (1993) Syst. Biol., 42, pp. 384-397 Caterino, M.S., Cho, S., Sperling, F.A.H., The current state of insect molecular systematics: A thriving Tower of Babel (2000) Annu. Rev. Entomol., 45, pp. 1-54 Caterino, M.S., Reed, R.D., Kuo, M.M., Sperling, F.A.H., A partitioned likelihood analysis of swallowtail butterfly phylogeny (Lepidoptera:Papilionidae) (2001) Syst. Biol., 50, pp. 106-127 Caterino, M.S., Sperling, F.A.H., Papilio phylogeny based on mitochondrial cytochrome oxidase I and II genes (1999) Mol. Phylogenet. Evol., 11, pp. 122-137 Cho, S.W., Mitchell, A., Regier, J.C., Mitter, C., Poole, R.W., Friedlander, T.P., Zhao, S.W., A highly conserved nuclear gene for low-level phylogenetics-elongation factor-1-alpha recovers morphology-based tree for Heliothine moths (1995) Mol. Biol. Evol., 12, pp. 650-656 Clary, D.O., Wolstenholme, D.R., The mitochondrial-DNA molecule of Drosophila yakuba-nucleotide-sequence, gene organization, and genetic-code (1985) J. Mol. Evol., 22, pp. 252-271 Colwell, R.K., Futuyma, D.J., On the measurement of niche breadth and overlap (1971) Ecology, 52, pp. 567-576 Desalle, R., Brower, A.V.Z., Process partitions, congruence and the independence of characters: Inferring relationships among closely-related Hawaiian Drosophila from multiple gene regions (1997) Syst. Biol., 46, pp. 751-764 Devries, P.J., (1987) The Butterflies of Costa Rica and Their Natural History, , Princeton University Press New Jersey Dobler, S., Mardulyn, P., Pasteels, J.M., Rowell-Rahier, M., Host-plant switches and the evolution of chemical defense and life history in the leaf beetle genus Oreina (1996) Evolution, 50, pp. 2373-2386 Ehrlich, P.R., Raven, P.H., Butterflies and plants: A study in coevolution (1964) Evolution, 18, pp. 586-608 Faith, D.P., Cranston, P.S., Could a cladogram this short have arisen by chance alone-on permutation tests for cladistic structure (1991) Cladistics, 7, pp. 1-28 Farris, J.S., Kallersjo, M., Kluge, A.G., Bult, C., Testing significance of incongruence (1994) Cladistics, 10, pp. 315-319 Felsenstein, J., Confidence-limits on phylogenies-an approach using the bootstrap (1985) Evolution, 39, pp. 783-791 Fordyce, J.A., Agrawal, A.A., The role of plant trichomes and caterpillar group size on growth and defence of the pipevine swallowtail Battus philenor (2001) J. Anim. Ecol., 70, pp. 997-1005 Fordyce, J.A., Nicce, C.C., Geographic variation in clutch size and a realized benefit of aggregative feeding (2004) Evolution, 58, pp. 447-450 Fox, L.R., Morrow, P.A., Specialization-species property or local phenomenon (1981) Science, 211, pp. 887-893 Freitas, A.V.L., Brown, K.S., Phylogeny of the Nymphalidae (Lepidoptera) (2004) Syst. Biol., 53, pp. 363-383 Freitas, A.V.L., Ramos, R.R., Population biology of Parides anchises nephalion (Papilionidae) in a costal site in southeast Brazil (2001) Braz. J. Biol., 61, pp. 623-630 Futuyma, D.J., Keese, M.C., Scheffer, S.J., Genetic constraints and the phylogeny of insect-plant associations - Responses of Ophraella communa (Coleoptera, Chrysomelidae) to host plants of its congeners (1993) Evolution, 47, pp. 888-905 Futuyma, D.J., Moreno, G., The evolution of ecological specialization (1988) Annu. Rev. Ecol. Syst., 19, pp. 207-233 Gomez-Zurita, J., Juan, C., Petitpierre, E., The evolutionary history of the genus Timarcha (Coleoptera, Chrysomelidae) inferred from mitochondrial COII gene and partial 16S rDNA sequences (2000) Mol. Phylogenet. Evol., 14, pp. 304-317 Haase, E., (1892) Untersuchungenüber die Mimikry auf Grundlage Eines Natürlichen Systems der Papilioniden. 2. Untersuchungenüber die Mimikry, , Nägele, Stuttgart Hancock, D.L., Classification of the Papilionidae: A phylogenetic approach (1983) Smithersia, 2, pp. 1-48 Harrison, R.G., Animal mitochondrial DNA as a genetic marker in population and evolutionary biology (1989) Trends Ecol. Evol., 4, pp. 6-11 Haüser, C.L., Jong, R.D., Lamas, G., Robbins, R.K., Smith, C., Vane-Wright, R.I., (2002) Papilionidae - Revised GloBIS/GART Species Checklist (2nd Draft), , http://www.insects-online.de/frames/papilio.htm Honda, K., Hayashi, N., Chemical nature of larval osmeterial secretions of papilionid butterflies in the genera Parnassius, Sericinus and Pachliopta (1995) J. Chem. Ecol., 21, pp. 859-867 Huelsenbeck, J.P., Larget, B., Miller, R.E., Ronquist, F., Potential applications and pitfalls of Bayesian inference of phylogeny (2002) Syst. Biol., 51, pp. 673-688 Huelsenbeck, J.P., Ronquist, F., MRBAYES: Bayesian inference of phylogenetic trees (2001) Bioinformatics, 17, pp. 754-755 Huelsenbeck, J.P., Ronquist, F., Nielsen, R., Bollback, J.P., Bayesian inference of phylogeny and its impact on evolutionary biology (2001) Science, 294, pp. 2310-2314 Jaenike, J., Host specialization in phytophagous insects (1990) Annu. Rev. Ecol. Syst., 21, pp. 243-273 Janz, N., Nyblom, K., Nylin, S., Evolutionary dynamics of host-plant specialization: A case study of the tribe Nymphalini (2001) Evolution, 55, pp. 783-796 Kato, Y., Yagi, T., Biogeography of the subspecies of Parides (Byasa) alcinous (Lepidoptera: Papilionidae) based on a phylogenetic analysis of mitochondrial ND5 sequences (2004) Syst. Entomol., 29, pp. 1-9 Kelley, S.T., Farrell, B.D., Is specialization a dead end? the phylogeny of host use in Dendroctonus bark beetles (Scolytidae) (1998) Evolution, 52, pp. 1731-1743 Klitzke, C.F., Brown, K.S., The occurrence of aristolochic acids in neotropical troidine swallowtails (Lepidoptera: Papilionidae) (2000) Chemoecology, 10, pp. 99-102 Kondo, K., Shinkawa, T., Molecular systematics of birdwing butterflies (Papilionidae) inferred from mitochondrial ND5 gene (2003) J. Lepid. Soc., 57, pp. 17-24 Kumar, S., Tamura, K., Jakobsen, I.B., Nei, M., MEGA2: Molecular evolutionary genetics analysis software (2001) Bioinformatics, 17, pp. 1244-1245 Lin, C.P., Danforth, B.N., How do insect nuclear and mitochondrial gene substitution patterns differ. Insights from Bayesian analyses of combined datasets (2004) Mol. Phylogenet. Evol., 30, pp. 686-702 Maddison, W.P., Maddison, D.R., (1999) MacClade: Analysis of Phylogeny and Character Evolution. Version 3.08, , Sinauer Associates, Sunderland, Massachusets Miller, J.S., Phylogenetic studies in the Papilioninae (Lepidoptera, Papilionidae) (1987) B. Am. Mus. Nat. Hist., 186, pp. 365-512 (2003) Anexo à Instrução Normativa n 3, de 27 de Maio de 2003, do Ministério do Meio Ambiente. Lista das Espécies da Fauna Brasileira Ameaçadas de Extinção, , http://www.ibama.gov.br/fauna/downloads/lista%20spp.pdf Morais, A.B.B., Brown, K.S., Larval foodplant and other effects on Troidine guild composition (Papilionidae) in Southeastern Brazil (1991) J. Res. Lepid., 30, pp. 19-37 Moran, N.A., The evolution of host-plant alternation in aphids: Evidence for specialization as a dead end (1988) Am. Nat., 132, pp. 681-706 Morinaka, S., Maeyma, T., Maekawa, K., Erniwati, Prijono, S.N., Ginarsa, I.K., Nakazawa, T., Hidaka, T., Molecular phylogeny of birdwing butterflies based on the representatives in most genera of the tribe Troidini (Lepidoptera: Papilionidae) (1999) Entomol. Sci., 2, pp. 347-358 Morinaka, S., Minaka, N., Sekiguchi, M., Erniwati, Prijono, S.N., Ginarsa, I.K., Myiata, T., Hidaka, T., Molecular phylogeny of birdwing butterflies of the tribe Troidini (Lepidoptera: Papilionidae)-using all species of the genus Ornithoptera (2000) Biogeography, 2, pp. 103-111 Moss, A.M., The Papilios of para (1920) Novit. Zool., 26, pp. 295-319 Munroe, E., The classification of the Papilionidae (1961) Can. Entomol., 17, pp. 1-51 Munroe, E., Ehrlich, P.R., Harmonization of concepts of higher classification of the Papilionidae (1960) J. Lepid. Soc., 14, pp. 169-175 Nishida, R., Fukami, H., Ecological adaptation of an Aristolochiaceae-feeding swallowtail butterfly, Atrophaneura alcinous, to aristolochic acids (1989) J. Chem. Ecol., 15, pp. 2549-2563 Nishida, R., Weintraub, J.D., Feeny, P., Fukami, H., Aristolochic acids from Thottea spp (Aristolochiaceae) and the osmeterial secretions of Thottea-feeding troidine swallowtail larvae (Papilionidae) (1993) J. Chem. Ecol., 19, pp. 1587-1594 Nosil, P., Transition rates between specialization and generalization in phytophagous insects (2002) Evolution, 56, pp. 1701-1706 Nylander, J.A.A., Ronquist, F., Huelsenbeck, J.P., Nieves-Aldrey, J.L., Bayesian phylogenetic analysis of combined data (2004) Syst. Biol., 53, pp. 47-67 Otero, L.S., Brown, K.S., Biology and ecology of Parides ascanius (Cramer, 1775) (Lep., Papilionidae), a primitive butterfly threatened with extinction (1986) Atala, 10 (12), pp. 2-16 Papaj, D.R., Interpopulation differences in host preference and the evolution of learning in the butterfly, Battus philenor (1986) Evolution, 40, pp. 518-530 Pasteels, J.M., Rowell-Rahier, M., Proximate and ultimate causes for host plant influence on chemical defense of leaf beetles (Coleoptera, Chrysomelidae) (1991) Entomol. Gen., 15, pp. 227-235 Posada, D., Crandall, K.A., MODELTEST: Testing the model of DNA substitution (1998) Bioinformatics, 14, pp. 817-818 Racheli, T., Oliverio, M., Biogeographical patterns of the neotropical genus Battus Scopoli 1777 (Lepidoptera, Papilionidae) (1993) Trop. Zool., 6, pp. 55-65 Rambaut, A., (1996) Se-Al: Sequence Alignment Editor, , http://evolve.zoo.ox.ac.uk Rausher, M.D., Search image for leaf shape in a butterfly (1978) Science, 200, pp. 1071-1073 Rausher, M.D., Host abundance, juvenile survival, and oviposition preference in Battus philenor (1980) Evolution, 34, pp. 342-355 Rausher, M.D., Odendaal, F.J., Switching and the pattern of host use by Battus philenor butterflies (1987) Ecology, 68, pp. 869-877 Reed, R.D., Sperling, F.A.H., Interaction of process partitions in phylogenetic analysis: An example from the swallowtail butterfly genus Papilio (1999) Mol. Biol. Evol., 16, pp. 286-297 Rodrígues, F., Oliver, J.L., Marín, A., Medina, J.R., The general stochastic model of nucleotide substitution (1990) J. Theor. Biol., 142, pp. 485-501 Ronquist, F., Nylin, S., Process and pattern in the evolution of species associations (1990) Syst. Zool., 39, pp. 323-344 Rothschild, W., Jordan, K., A revision of the American Papilios (1906) Novit. Zool., 13, pp. 411-752 Rothschild, M., Reichstein, T., Von Euw, J., Aplin, R., Harman, R.R.M., Toxic Lepidoptera (1970) Toxicon, 8, pp. 293-299 Scheffer, S.J., Wiegmann, B.M., Molecular phylogenetics of the holly leaf miners (Diptera: Agromyzidae: Phytomyza): Species limits, speciation, and dietary specialization (2000) Mol. Phylogenet. Evol., 17, pp. 244-255 Scriber, J.M., Overview of swallowtail butterflies: Taxonomic and distributional latitude (1995) Swallowtail Butterflies: Their Ecology and Evolutionary Biology, pp. 3-20. , J.M. Scriber Y. Tsubaki R.C. Lederhouse Scientific Publishers Gainesville, FL Sillen-Tullberg, B., Evolution of gregariousness in aposematic butterfly larvae: A phylogenetic analysis (1988) Evolution, 42, pp. 293-305 Sime, K., Chemical defence of Battus philenor larvae against attack by the parasitoid Trogus pennator (2002) Ecol. Entomol., 27, pp. 337-345 Sime, K.R., Feeny, P.F., Haribal, M.M., Sequestration of aristolochic acids by pipevine swallowtail, Battus philenor (L.): Evidence and ecological implications (2000) Chemoecology, 10, pp. 169-178 Sorensen, M.D., (1999) TreeRot, Version 2, , Boston University, Boston, MA Spade, P., Tyler, H., Brown, J.W., The biology of seven Troidine swallowtail butterflies (Papilionidae) in Colima, Mexico (1988) J. Res. Lepid., 26, pp. 13-26 Sperling, F.A.H., Butterfly molecular systematics: From species definitions to higher-level phylogenies (2003) Butterflies: Ecology and Evolution Taking Flight, pp. 431-458. , C.L. Boggs W.B. Watt P.R. Erlich The University of Chicago Press Chicago and London Stamp, N.E., Physical constraints of defense in response to invertebrate predators by pipevine caterpillars (Battus philenor: Papilionidae) (1986) J. Lepid. Soc., 40, pp. 191-205 Swofford, D.L., (2002) PAUP*: Phylogenetic Analysis Using Parsimony (* and Other Methods), , Sinauer Associates, Sunderland, MA Tyler, H., Brown, K.S., Wilson, K., (1994) Swallowtail Butterflies of the Americas-A Study in Biological Dynamics, Ecological Diversity, Biosystematics, and Conservation, , Scientific Publishers Gainesville, FL Urzúa, A., Priestap, H., Aristolochic acids from Battus polydamas (1985) Biochem. Syst. Ecol., 13, pp. 169-170 Vane-Wright, R.I., Evidence and identity in butterfly systematics (2003) Butterflies: Ecology and Evolution Taking Flight, pp. 477-513. , C.L. Boggs W.B. Watt P.R. Erlich The University of Chicago Press Chicago and London Wahlberg, N., The phylogenetics and biochemistry of host-plant specialization in Melitaeine butterflies (Lepidoptera: Nymphalidae) (2001) Evolution, 55, pp. 522-537 Wahlberg, N., Nylin, S., Morphology versus molecules: Resolution of the positions of Nymphalis, Polygonia, and related genera (Lepidoptera: Nymphalidae) (2003) Cladistics, 19, pp. 213-223 Wahlberg, N., Weingartner, E., Nylin, S., Towards a better understanding of the higher systematics of Nymphalidae (Lepidoptera: Papilionoidea) (2003) Mol. Phylogenet. Evol., 28, pp. 473-484 Weintraub, J.D., Host plant association patterns and phylogeny in the tribe Troidini (Lepidoptera: Papilionidae) (1995) Swallowtail Butterflies: Their Ecology and Evolutionary Biology, pp. 307-316. , J.M. Scriber Y. Tsubaki R.C. Lederhouse Scientific Publishers Gainesville, FL Wootton, R.J., Functional morphology of insect wings (1992) Annu. Rev. Entomol., 37, pp. 113-140 Yoder, A.D., Irwin, J.A., Payseur, B.A., Failure of the ILD to determine data combinability for slow loris phylogeny (2001) Syst. Biol., 50, pp. 408-424 Zakharov, E.V., Caterino, M.S., Sperling, F.A.H., Molecular phylogeny, historical biogeography, and divergence time estimates for swallowtail butterflies of the genus Papilio (Lepidoptera: Papilionidae) (2004) Syst. Biol., 53, pp. 193-215